首页> 外文期刊>Journal of Coordination Chemistry >Hydrolysis and DFT structural studies of dinuclear Zn(II) and Cu(II) macrocyclic complexes of m-12N(3)O-dimer and the effect of pH on their promoted HPNP hydrolysis rates
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Hydrolysis and DFT structural studies of dinuclear Zn(II) and Cu(II) macrocyclic complexes of m-12N(3)O-dimer and the effect of pH on their promoted HPNP hydrolysis rates

机译:m-12N(3)O-二聚体双核Zn(II)和Cu(II)大环配合物的水解和DFT结构研究以及pH对其促进的HPNP水解速率的影响

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The synthesis of the ligand, m-12N(3)O-dimer (1,3-bis(1-oxa-4,7,10-triazacyclododecan-7-yl)methyl)benzene, L), and the stability and hydrolysis constants of its dinuclear Zn(II) and Cu(II) complexes are reported, in addition to the effect of pH on HPNP (2-hydroxypropyl-4-nitrophenylphosphate) hydrolysis reaction rates promoted by these complexes. Various structural possibilities of the [Zn2L] and [Cu2L] hydrolytic species derived from solution equilibrium modeling are predicted from density functional theory (DFT) studies to correlate with the promoted HPNP hydrolysis reaction rates and to establish the structure-function-reactivity relationship. Upon deprotonation [Zn2L(OH)](3+) tends to form a structure with a closed-form conformation where it is not possible for para-isomers. At pH >8, the formation of the closed-form [Zn2L(OH)(2)](2+) and [Zn2L(mu-OH)(OH)(2)](+) species led to faster promoted HPNP hydrolysis rates than the [Zn2L(OH)](3+) species. On the other hand, the observed rates of the Cu2L-promoted HPNP hydrolysis reaction were much slower than those of the [Zn2L]-promoted ones due to formation of the inactive, di-mu-OH- bridged closed-form [Cu2L(mu-OH)(2)](2+) structure at high pH. The effects of solvent molecules and the use of higher DFT computation levels, i.e., M06 and M06-2X, in conjunction with cc-pVDZ and cc-pVTZ basis sets on the DFT-predicted structures for both [Cu(12N(4))(H2O)](2+) and [Zn(12N(3)O)(H2O)(2)](2+) complexes were also evaluated and compared with those using the B3LYP/6-31G* method.
机译:配体m-12N(3)O-二聚体(1,3-双(1-oxa-4,7,10-三氮杂环十二烷-7-基)甲基)苯的合成,稳定性和水解除了pH对这些配合物促进的HPNP(2-羟丙基-4-硝基苯基磷酸)水解反应速率的影响外,还报告了其双核Zn(II)和Cu(II)配合物的常数。密度泛函理论(DFT)研究预测了由溶液平衡模型衍生的[Zn2L]和[Cu2L]水解物种的各种结构可能性,以与提高的HPNP水解反应速率相关并建立结构-功能-反应性关系。在去质子化时,[Zn2L(OH)](3+)倾向于形成具有封闭形式构象的结构,其中对位异构体是不可能的。在pH> 8时,闭合形式的[Zn2L(OH)(2)](2+)和[Zn2L(mu-OH)(OH)(2)](+)物种的形成导致更快地促进HPNP水解率比[Zn2L(OH)](3+)物种高。另一方面,观察到的Cu2L促进的HPNP水解反应的速率比[Zn2L]促进的HPNP水解反应的速率要慢得多,这是由于形成了无活性的,二-μ-OH-桥联的闭合形式[ -OH)(2)](2+)结构在高pH下。溶剂分子的影响以及使用较高的DFT计算级别(即M06和M06-2X)以及cc-pVDZ和cc-pVTZ基集,对[Cu(12N(4)))的DFT预测结构还评估了(H2O)](2+)和[Zn(12N(3)O)(H2O)(2)](2+)配合物,并与使用B3LYP / 6-31G *方法的配合物进行了比较。

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